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可重复使用的磁性 FeO 纳米颗粒固定化铜绿假单胞菌细胞外产生菌蓝蛋白。

Extracellular production of azurin by reusable magnetic FeO nanoparticle-immobilized Pseudomonas aeruginosa.

机构信息

Department of Molecular Biology and Genetics, Graduate School of Natural and Applied Sciences, Atatürk University, Erzurum, Turkey.

Department of Nanoscience and Nanoengineering, Graduate School of Natural and Applied Sciences, Atatürk University, Erzurum, Turkey.

出版信息

J Biotechnol. 2024 Nov 10;394:48-56. doi: 10.1016/j.jbiotec.2024.08.010. Epub 2024 Aug 17.

Abstract

Azurin, found in the periplasm of Pseudomonas aeruginosa, has garnered significant attention as a potential anticancer agent in recent years. High-level secretion of proteins into the culture medium, offers a significant advantage over periplasmic or cytoplasmic expression. In this study, for the first time, P. aeruginosa cells were immobilized with magnetic nanoparticles (MNPs) to ensure effective, simple and quick separation of the cells and secretion of periplasmic azurin protein to the culture medium. For this purpose, polyethyleneimine-coated iron oxide (FeO@PEI) MNPs were synthesized and MNPs containing Fe up to 600 ppm were found to be non-toxic to the bacteria. The highest extracellular azurin level was observed in LB medium compared to peptone water. The cells immobilized with 400 ppm Fe-containing MNPs secreted the highest protein. Lastly, the immobilized cells were found suitable for azurin secretion until the sixth use. Thus, the magnetic nanoparticle immobilization method facilitated the release of azurin as well as the simple and rapid separation of cells. This approach, by facilitating protein purification and enabling the reuse of immobilized cells, offers a cost-effective means of protein production, reducing waste cell formation, and thus presents an advantageous method.

摘要

铜绿假单胞菌周质中的天青蛋白近年来作为一种有潜力的抗癌药物受到了广泛关注。与周质或细胞质表达相比,将蛋白质高水平分泌到培养基中具有显著优势。在这项研究中,首次使用磁性纳米颗粒 (MNP) 固定铜绿假单胞菌细胞,以确保有效、简单和快速分离细胞并将周质天青蛋白分泌到培养基中。为此,合成了聚乙烯亚胺 (PEI) 包覆的氧化铁 (FeO@PEI) MNP,并发现含有高达 600ppm Fe 的 MNP 对细菌无毒。与蛋白胨水相比,LB 培养基中天青蛋白的胞外水平最高。用含有 400ppm Fe 的 MNP 固定的细胞分泌的蛋白质最多。最后,发现固定化细胞适合天青蛋白分泌,直到第六次使用。因此,磁性纳米颗粒固定化方法促进了天青蛋白的释放以及细胞的简单快速分离。这种方法通过促进蛋白质的纯化并使固定化细胞能够重复使用,提供了一种经济有效的蛋白质生产方法,减少了废细胞的形成,因此是一种有利的方法。

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